电极辅助球形红杆菌平台化学物质的生产。

Biofilms Pub Date : 2020-07-01 DOI:10.5194/biofilms9-135
Ferdinand Schmid, J. Gescher
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引用次数: 0

摘要

本研究的目的是建立光合非硫紫色细菌球形红细菌的阴极生物膜作为生物催化剂,以二氧化碳为碳源,以电流为能量和电子源生产平台化学品 ;因此,在提供光、CO2和稳定电流的生物电系统(BES)中培养了球形R.sphaeroides。计时电位测量揭示了维持所施加的电流I=22,2#181所必需的阴极电势;A/cm²;。有趣的是,球形假单胞菌暴露于抗生素卡那霉素会导致阴极上生物膜的产生增加,尽管该生物体表达了必要的抗性标记。与野生型(E=-1,17V)相比,这种增强的生物膜产生将电势提高了170mV至E=-1V,因此提高了该过程的效率。迄今为止,这种效应的分子基础尚不清楚,目前正在使用蛋白质组学方法进行研究。为了阐明,如果作为生产菌株的球形假单胞菌的生产力也得到了提高,则丙酮的生产被确立为原理的证明。在确认自养条件下的乙偶姻生产后,进行了各种提高该工艺时空产率的方法,并将介绍其效果  ;
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrode assisted production of platform chemicals in Rhodobacter sphaeroides.

The aim of this study was to establish cathodic biofilms of the photosynthetic non sulfur purple bacterium Rhodobacter sphaeroides as biocatalyst for the production of platform chemicals from carbon dioxide as carbon source and an electrical current as energy and electron source.  Therefore, R. sphaeroides was cultivated in a bioelectrical system (BES) in which light, CO2 and a stable current were provided. Chronopotentiometric measurements revealed the cathode potential necessary to maintain the applied current of I = 22,2 µA/cm². Interestingly, exposure of R. sphaeroides to the antibiotic kanamycin lead to increased biofilm production on the cathode although the organism expressed the necessary resistance marker. This enhanced biofilm production raised the potential by 170 mV to E = -1 V compared to the wildtype (E = -1,17 V) and hence increased the efficiency of the process. To date, the molecular basis of this effect remains unclear and is under investigation using a proteomic approach. To elucidate, if the productivity of R. sphaeroides as a production strain is also enhanced, the production of acetoin was established as proof of principle. After the confirmation of the acetoin production under autotrophic conditions, various approaches to increase the space-time yields of the process were conducted and their effect will be presented.  

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